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May 28, 2026Advanced Materials Technologies0 citationsOpen Access

Solid Particle‐Liquid Metal Mixtures for Robust High‐Current Interconnects in Stretchable Electronics and Soft Robotics

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EKEthan J. KringsCBCalan BrantCECarson Emeigh

Key Points

  • This research aims to enhance the reliability and performance of interconnects in stretchable electronics and soft robotics through innovative solid particle-liquid metal mixtures.
  • Developed solid particle-liquid metal mixtures containing iron, tungsten, and glass fillers.
  • Evaluated the current density and operational longevity under DC current conditions.
  • Assessed electrical stability and Joule heating performance of the mixtures.
  • Achieved a maximum current density greater than 2.5 x 10^6 A/m², an 80% improvement over unfilled liquid metals.
  • Extended operational lifetimes under a constant DC current density of 1.1 x 10^6 A/m².
  • Demonstrated enhanced actuation speeds and cyclic frequencies in electrothermal actuators with solid particle fillers.

Abstract

ABSTRACT Electromigration and thermal degradation limit the reliability of interconnects in stretchable electronics and soft robotics, particularly in room‐temperature liquid metals (LMs), where weaker interatomic bonds accelerate failure at lower current densities. To address this, we created solid particle‐LM mixtures that incorporate metallic (iron and tungsten) and non‐metallic (glass) particle fillers, which suppress electromigration and thermal degradation. These LM mixtures are able to achieve a maximum current density exceeding 2.5 10 (80% improvement over unfilled LM) while extending operational lifetimes by under a constant DC current density of 1.1 10 . Despite a small decrease in electrical conductivity at higher filler loadings, the LM mixtures retained their fluidic properties, which are critical for integration in soft matter systems. Furthermore, the low particle loading (5 vol.%) enhanced Joule heating performance, enabling electrothermal actuators to achieve faster actuation speeds and higher cyclic frequencies compared to their pure LM counterparts. By increasing the electrical stability through solid particle fillers, this facile strategy offers a scalable pathway toward robust, high‐current LM interconnects for next‐generation stretchable electronics and soft robotic systems.

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Cite This Study

Krings et al. (2026) studied this question.

synapsesocial.com/papers/6a17dbe93fad632b0f9d89dchttps://doi.org/10.1002/admt.71060
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